WO2023199460A1 - 回転装置 - Google Patents

回転装置 Download PDF

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Publication number
WO2023199460A1
WO2023199460A1 PCT/JP2022/017773 JP2022017773W WO2023199460A1 WO 2023199460 A1 WO2023199460 A1 WO 2023199460A1 JP 2022017773 W JP2022017773 W JP 2022017773W WO 2023199460 A1 WO2023199460 A1 WO 2023199460A1
Authority
WO
WIPO (PCT)
Prior art keywords
rotating device
cylindrical portion
reinforcing ring
cylindrical part
inner cylindrical
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/JP2022/017773
Other languages
English (en)
French (fr)
Japanese (ja)
Inventor
康平 佐俣
洋一 田宮
拓真 笹井
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Mitsubishi Electric Corp
Original Assignee
Mitsubishi Electric Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Mitsubishi Electric Corp filed Critical Mitsubishi Electric Corp
Priority to JP2023525479A priority Critical patent/JP7317267B1/ja
Priority to PCT/JP2022/017773 priority patent/WO2023199460A1/ja
Publication of WO2023199460A1 publication Critical patent/WO2023199460A1/ja
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16HGEARING
    • F16H49/00Other gearings
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K16/00Machines with more than one rotor or stator
    • H02K16/02Machines with one stator and two or more rotors

Definitions

  • This application relates to a rotating device.
  • a rotating device that has a triple cylindrical structure in which an inner cylindrical part, an intermediate cylindrical part, and an outer cylindrical part are arranged concentrically.
  • each of the three cylindrical parts functions as a stator or a rotor.
  • a rotating device in which the intermediate cylindrical portion serves as a stator and the inner and outer cylindrical portions serve as rotors is called a magnetic gear device.
  • rotational torque is transmitted between an inner cylindrical part and an outer cylindrical part via an intermediate cylindrical part provided with magnetic pole pieces. Therefore, magnetic gear devices are applied to, for example, speed increasers in wind power generators, transmissions in automobiles, and the like.
  • a rotating device in which the outer cylindrical portion serves as a stator and the inner cylindrical portion and the intermediate cylindrical portion serve as rotors is called a magnetically geared rotating electric machine.
  • a magnetically geared rotating electric machine when an intermediate cylindrical portion provided with magnetic pole pieces is rotated by external power, an inner cylindrical portion provided with magnets rotates at a predetermined speed increase ratio.
  • a current is generated in a coil provided in the outer cylindrical part due to changes in magnetic flux due to rotation of the inner cylindrical part. Therefore, magnetically geared rotating electric machines are applied to, for example, generators of wind power generators.
  • the radial width of the intermediate cylindrical part is small in order to strengthen the magnetic coupling between the inner cylindrical part and the outer cylindrical part.
  • the intermediate cylindrical portion also has magnetic pole pieces arranged in the circumferential direction.
  • This magnetic pole piece has a structure in which magnetic materials such as electromagnetic steel sheets are laminated in the axial direction.
  • an electromagnetic force acts on the magnetic pole piece of the intermediate cylindrical portion in the radial direction, and gravity due to its own weight acts on the magnetic pole piece.
  • the intermediate cylindrical portion serves as a rotor
  • an electromagnetic force acts on the magnetic pole piece of the intermediate cylindrical portion in the radial direction, and gravity due to its own weight and centrifugal force due to rotation act on the magnetic pole pieces of the intermediate cylindrical portion. Therefore, the intermediate cylindrical portion is required to have rigidity that will not be deformed by the electromagnetic force acting on the magnetic pole piece and the gravity due to its own weight.
  • a rotating device that includes an intermediate cylindrical portion in which connecting members and magnetic pole pieces arranged alternately in the circumferential direction are fastened in the axial direction via a reinforcing ring.
  • the reinforcing ring and the connecting member are connected to end plates disposed at both ends of the intermediate cylindrical portion by through bolts.
  • a protrusion that contacts the connecting member and the magnetic pole piece from the outside in the radial direction is provided on the outer periphery of the reinforcing ring.
  • the present application was made to solve the above-mentioned problems, and aims to provide a rotating device in which the rigidity of the intermediate cylindrical portion is improved by increasing the rigidity of the reinforcing ring itself.
  • the rotating device of the present application is a rotating device in which an inner cylindrical portion, an intermediate cylindrical portion, and an outer cylindrical portion are arranged concentrically around a rotation axis, and the intermediate cylindrical portion has spacers and magnetic pole pieces arranged alternately in the circumferential direction. and one or more reinforcing rings that connect the plurality of annular parts in the axial direction, and the radial width of the reinforcing ring is greater than the radial width of the annular part. It is set large.
  • the radial width of the reinforcing ring is set larger than the radial width of the annular portion, the stiffness of the reinforcing ring itself can be increased, and the rigidity of the intermediate cylindrical portion can be improved. I can do it.
  • FIG. 2 is a cross-sectional view of the rotating device according to the first embodiment.
  • FIG. 2 is a cross-sectional view of the rotating device according to the first embodiment.
  • FIG. 2 is an exploded perspective view of the rotating device according to the first embodiment.
  • FIG. 3 is a cross-sectional view of a rotating device according to a second embodiment.
  • FIG. 3 is a cross-sectional view of a rotating device according to a second embodiment.
  • FIG. 3 is an exploded perspective view of a rotating device according to a second embodiment.
  • FIG. 3 is a cross-sectional view of a rotating device according to a third embodiment.
  • FIG. 7 is a cross-sectional view of a rotating device according to a fourth embodiment.
  • FIG. 7 is a cross-sectional view of a rotating device according to a fifth embodiment.
  • FIG. 7 is a cross-sectional view of a rotating device according to a sixth embodiment.
  • Embodiment 1. 1 and 2 are cross-sectional views of a rotating device according to a first embodiment.
  • FIG. 1 is a cross-sectional view of the rotating device 1 on a plane perpendicular to the rotation axis.
  • FIG. 2 is a cross-sectional view of the rotating device 1 in a plane parallel to the rotation axis.
  • the rotating device 1 is a magnetic gear device.
  • the rotating device 1 of the present embodiment includes an inner cylindrical portion 10, an intermediate cylindrical portion 20 disposed on the outer periphery of the inner cylindrical portion 10 with a gap in between, and and an outer cylindrical portion 30 arranged at .
  • the inner cylindrical portion 10, the intermediate cylindrical portion 20, and the outer cylindrical portion 30 are arranged concentrically around the rotating shaft 40. Note that, in FIGS. 1 and 2, the case for housing the inner cylindrical portion 10, the intermediate cylindrical portion 20, and the outer cylindrical portion 30 therein is omitted.
  • the rotating shaft 40 has a cylindrical shape.
  • a direction parallel to the rotating shaft 40 is called an axial direction
  • a direction orthogonal to the rotating shaft 40 is called a radial direction
  • a direction in which the rotating shaft rotates is called a circumferential direction.
  • the inner diameter side is a direction approaching the rotating shaft 40 in the radial direction
  • the outer diameter side is a direction moving away from the rotating shaft 40 in the radial direction.
  • the inner cylindrical portion 10 includes an inner cylindrical core 11 and inner cylindrical magnets 12 arranged circumferentially on the outer peripheral surface of the inner cylindrical core 11.
  • the inner cylindrical core 11 is fastened to the rotating shaft 40.
  • the inner cylindrical magnet 12 is a permanent magnet. Further, the inner cylindrical magnet 12 has S poles and N poles alternately arranged in the circumferential direction, and is divided in the axial direction.
  • the inner cylindrical core 11 is made of, for example, a magnetic material such as magnetic steel sheets laminated in the axial direction.
  • the intermediate cylindrical portion 20 includes a plurality of annular portions 23 in which spacers 21 and magnetic pole pieces 22 are arranged alternately in the circumferential direction, and a reinforcing ring 24 that connects the plurality of annular portions 23 in the axial direction. ing. Further, the intermediate cylindrical portion 20 has end plates 25 at both ends in the axial direction. This end plate 25 is connected to a rotating shaft 40 via a bearing 26.
  • the magnetic pole piece 22 is made of a magnetic material such as magnetic steel sheets laminated in the axial direction.
  • the spacer 21, the reinforcing ring 24, and the end plate 25 are made of a nonmagnetic material such as austenitic stainless steel, aluminum, or resin.
  • the outer cylindrical portion 30 has a cylindrical outer cylindrical core 31 and outer cylindrical magnets 32 arranged circumferentially on the inner peripheral surface of the outer cylindrical core 31.
  • the outer cylindrical magnet 32 is a permanent magnet. Further, the outer cylindrical magnet 32 has S poles and N poles arranged alternately in the circumferential direction.
  • the outer cylindrical core 31 is made of, for example, a magnetic material such as magnetic steel sheets laminated in the axial direction.
  • FIG. 3 is an exploded perspective view of the rotating device 1 of this embodiment. Note that in FIG. 3, the end plate 25 and bearing 26 of the intermediate cylindrical portion 20 are omitted.
  • the inner cylindrical magnet 12 is divided into 14 pieces in the circumferential direction and 4 pieces in the axial direction. However, the inner cylindrical magnet 12 does not necessarily have to be divided in the axial direction.
  • the magnetic pole piece 22 of the intermediate cylindrical portion 20 is divided into 24 pieces in the circumferential direction.
  • four annular portions 23 are connected by three reinforcing rings 24.
  • the outer cylindrical magnet 32 is divided into 18 pieces in the circumferential direction.
  • the rotating device 1 of this embodiment is a magnetic gear device. Therefore, the intermediate cylindrical part 20 is a stator, and the inner cylindrical part 10 and the outer cylindrical part 30 are rotors. Therefore, the inner cylindrical portion 10 rotates together with the rotating shaft 40. The outer cylindrical portion 30 and the inner cylindrical portion 10 rotate relative to each other. The intermediate cylindrical portion 20 is fixed to a case or the like via an end plate 25. Although not shown, the outer cylindrical portion 30 is rotatably supported with respect to the rotating shaft 40 via a bearing. For example, when the inner cylindrical portion 10 is rotated by external power, attractive and repulsive forces act between the inner cylindrical magnet 12 and the outer cylindrical magnet 32 via the magnetic pole pieces 22 of the intermediate cylindrical portion 20 . The rotational torque of the inner cylindrical portion 10 is transmitted to the rotational torque of the outer cylindrical portion 30 by the attractive and repulsive forces acting between the inner cylindrical magnet 12 and the outer cylindrical magnet 32.
  • the magnetic gear device when the inner cylindrical part 10 and the outer cylindrical part 30 are rotating, an electromagnetic force acts on the intermediate cylindrical part 20 in the radial direction due to the magnetic forces of the inner cylindrical magnet 12 and the outer cylindrical magnet 32.
  • the outer diameter of the intermediate cylindrical portion 20 is 10 m or more, and the thickness of the annular portion 23 in the radial direction is also approximately 40 mm. Therefore, the effect of gravity due to its own weight on the intermediate cylindrical portion 20 cannot be ignored.
  • the intermediate cylindrical portion 20 may be deformed by electromagnetic force and gravity.
  • both ends of the intermediate cylindrical portion 20 in the axial direction are fixed by end plates and are not easily deformed, but the central portion in the axial direction is easily deformed in the radial direction.
  • the radial width of the reinforcing ring 24 is larger than the radial width of the annular portion 23. Therefore, the rigidity of the reinforcing ring 24 itself can be increased, and as a result, the rigidity of the intermediate cylindrical portion 20 can be improved.
  • the inner diameter side end of the reinforcing ring 24 of the intermediate cylindrical part 20 is located on the inner diameter side than the outer diameter side end of the inner cylindrical magnet 12 of the inner cylinder part 10.
  • FIG. 3 shows a shape in which the diameter of the inner circumferential surface of the reinforcing ring 24 is uniform, the diameter of the inner circumferential surface of the reinforcing ring 24 does not necessarily have to be uniform.
  • An electromagnetic force and its own weight act on the magnetic pole piece 22 of the annular portion 23, and its own weight acts on the spacer 21. Therefore, the reinforcing ring 24 receives a greater load at the position where it contacts the magnetic pole piece 22 than at the position where it contacts the spacer 21 .
  • the reinforcing ring 24 By making the reinforcing ring 24 have a structure in which the diameter of the inner circumferential surface at the position in contact with the magnetic pole piece 22 is smaller than the diameter of the inner circumferential surface at the position in contact with the spacer 21, an increase in the volume of the reinforcing ring 24 is suppressed and the intermediate The rigidity of the cylindrical portion 20 can be increased. That is, by making the radial width of the reinforcing ring 24 in the portion of the annular portion 23 in contact with the magnetic pole piece 22 larger than the radial width of the reinforcing ring 24 in the portion of the annular portion 23 in contact with the spacer 21, the intermediate cylinder The rigidity of the portion 20 can be increased.
  • the inner cylindrical portion, which is the rotor, and the rotating shaft are fastened together.
  • the intermediate cylindrical part that is the stator and the rotating shaft may be fastened together, and the inner cylindrical part that is the rotor may be connected to the rotating shaft via a bearing.
  • the rotating shaft does not rotate and remains fixed.
  • the intermediate cylindrical portion 20 is provided with three reinforcing rings 24, but it may be provided with one or more reinforcing rings 24.
  • Embodiment 2. 4 and 5 are cross-sectional views of a rotating device according to a second embodiment.
  • FIG. 4 is a cross-sectional view of the rotating device 1 on a plane perpendicular to the rotation axis.
  • FIG. 5 is a cross-sectional view of a plane parallel to the rotation axis of the rotation device.
  • the rotating device 1 is a magnetically geared rotating electric machine.
  • the rotating device 1 of the present embodiment includes an inner cylindrical portion 10, an intermediate cylindrical portion 20 disposed on the outer periphery of the inner cylindrical portion 10 with a gap in between, and and an outer cylindrical portion 30 arranged at .
  • the inner cylindrical portion 10, the intermediate cylindrical portion 20, and the outer cylindrical portion 30 are arranged concentrically around the rotating shaft 40.
  • FIG. 4 and FIG. 5 the case etc. which house the inner cylindrical part 10, the intermediate cylindrical part 20, and the outer cylindrical part 30 inside are omitted.
  • the configurations of the inner cylindrical portion 10 and the intermediate cylindrical portion 20 are similar to those of the rotating device of the first embodiment.
  • the outer cylindrical portion 30 has a cylindrical outer cylindrical core 31 , an outer cylindrical magnet 32 , and an outer cylindrical coil 33 .
  • the outer cylindrical core 31 has a plurality of teeth 31a that protrude inward from the cylindrical core back. Slots are formed between the plurality of teeth 31a.
  • the outer cylindrical coil 33 is wound around the teeth 31a using this slot.
  • the outer cylindrical magnet 32 is arranged in a slot on the inner diameter side of the outer cylindrical coil 33.
  • FIG. 6 is an exploded perspective view of the rotating device 1 of this embodiment. Note that in FIG. 6, the end plate 25 and bearing 26 of the intermediate cylindrical portion 20 are omitted. Further, in order to avoid complexity, the outer cylindrical coil 33 is also omitted in FIG.
  • the inner cylindrical magnet 12 is divided into 14 pieces in the circumferential direction and 4 pieces in the axial direction. Further, the magnetic pole piece 22 of the intermediate cylindrical portion 20 is divided into 24 pieces in the circumferential direction. Further, in the intermediate cylindrical portion 20, four annular portions 23 are connected by three reinforcing rings 24. Further, 18 outer cylindrical magnets 32 and 18 outer cylindrical coils 33 are arranged in the circumferential direction.
  • the rotating device 1 of this embodiment is a magnetically geared rotating electric machine. Therefore, the outer cylindrical part 30 is the stator, the inner cylindrical part 10 is the high speed rotor, and the intermediate cylindrical part 20 is the low speed rotor. Therefore, the inner cylindrical portion 10 rotates together with the rotating shaft 40, and the intermediate cylindrical portion 20 is rotatably supported with respect to the rotating shaft 40 via the bearing 26.
  • the outer cylindrical portion 30 is fixed to the case. For example, when the intermediate cylindrical portion 20 is rotated by external power, attractive and repulsive forces act between the inner cylindrical magnet 12 and the outer cylindrical magnet 32 via the magnetic pole pieces 22 of the intermediate cylindrical portion 20 . The rotational torque of the intermediate cylindrical portion 20 is transmitted to the rotational torque of the inner cylindrical portion 10 by the attractive and repulsive forces acting between the inner cylindrical magnet 12 and the outer cylindrical magnet 32 .
  • the intermediate cylindrical portion 20 when the intermediate cylindrical portion 20 is rotating, an electromagnetic force acts on the intermediate cylindrical portion 20 in the radial direction due to the magnetic force of the inner cylindrical magnet 12 and the outer cylindrical magnet 32. Further, centrifugal force also acts on the intermediate cylindrical portion 20. Furthermore, if the intermediate cylindrical portion 20 is large, the effect of gravity due to its own weight cannot be ignored. As a result, the intermediate cylindrical portion 20 may be deformed by electromagnetic force, centrifugal force, and gravity. In particular, both ends of the intermediate cylindrical portion 20 in the axial direction are fixed by end plates and are not easily deformed, but the central portion in the axial direction is easily deformed in the radial direction.
  • the radial width of the reinforcing ring 24 is larger than the radial width of the annular portion 23. Therefore, the rigidity of the reinforcing ring 24 itself can be increased, and as a result, the rigidity of the intermediate cylindrical portion 20 can be improved.
  • the inner diameter end of the reinforcing ring 24 of the intermediate cylindrical portion 20 is located on the inner diameter side of the outer diameter end of the inner cylindrical magnet 12 of the inner cylindrical portion 10.
  • the gap between the inner cylindrical magnet 12 of the inner cylindrical portion 10 and the magnetic pole piece 22 of the intermediate cylindrical portion 20 becomes smaller, increasing the rigidity of the reinforcing ring 24 and at the same time reducing rotational conversion efficiency. can be prevented.
  • the intermediate cylindrical portion 20 is provided with three reinforcing rings 24, but it may be provided with one or more reinforcing rings 24.
  • FIG. 7 is a sectional view of the rotating device according to the third embodiment.
  • FIG. 7 is a cross-sectional view of a plane parallel to the rotation axis of the rotation device.
  • the rotating device 1 of this embodiment will be explained as a magnetic gear device. Therefore, the basic configuration of the rotating device of this embodiment is the same as that of the rotating device of Embodiment 1.
  • a notch portion 11a is formed over the entire circumference of the inner cylindrical core 11 of the inner cylindrical portion 10. As shown in FIG. This notch portion 11a is formed at a position facing the reinforcing ring 24 of the intermediate cylindrical portion 20. Further, the inner cylindrical magnet 12 is divided into four parts in the axial direction corresponding to the notch portions 11a. The reinforcing ring 24 is spaced apart from the inner wall of the notch 11a. Therefore, the inner diameter end of the reinforcing ring 24 of the intermediate cylindrical portion 20 can be located on the inner diameter side than the outer diameter end of the inner cylindrical core 11 . As a result, the radial width of the reinforcing ring 24 can be further increased.
  • the intermediate cylindrical portion 20 includes three reinforcing rings 24, but it is sufficient to include one or more reinforcing rings 24.
  • the rotating device of this embodiment has been described as a magnetic gear device, similar effects can be obtained even if it is a magnetically geared rotating electric machine.
  • FIG. 8 is a sectional view of the rotating device according to the fourth embodiment.
  • FIG. 8 is a cross-sectional view of a plane parallel to the rotation axis of the rotation device.
  • the basic configuration of the rotating device of this embodiment is the same as that of the rotating device of Embodiment 3.
  • a notch portion 11a is formed over the entire circumference of the inner cylindrical core 11 of the inner cylindrical portion 10. As shown in FIG. This notch portion 11a is formed at a position facing the reinforcing ring 24 of the intermediate cylindrical portion 20. Further, the inner cylindrical magnet 12 is divided into four parts in the axial direction corresponding to the notch portions 11a. The reinforcing ring 24 is spaced apart from the inner wall of the notch 11a. Therefore, the inner diameter end of the reinforcing ring 24 of the intermediate cylindrical portion 20 can be located on the inner diameter side than the outer diameter end of the inner cylindrical core 11 . As a result, the radial width of the reinforcing ring 24 can be further increased.
  • the intermediate cylindrical portion 20 includes three reinforcing rings 24.
  • the radial width of the reinforcing ring 24 located on the axial center side is made smaller than the radial width of the reinforcing ring 24 located on the axial end side. Therefore, the axial mass distribution of the intermediate cylindrical portion 20 is larger on the end side than on the center side.
  • the intermediate cylindrical portion 20 is fixed at both ends in the axial direction with end plates 25. Therefore, the deformation of the intermediate cylindrical portion 20 due to gravity is greater at the center in the axial direction.
  • the mass distribution in the axial direction of the intermediate cylindrical portion 20 is larger on the end side than on the center side, so deformation of the central portion of the intermediate cylindrical portion 20 due to gravity occurs. can be made smaller.
  • the intermediate cylindrical portion 20 includes three reinforcing rings 24, but may include four or more reinforcing rings 24.
  • the rotating device of this embodiment has been described as a magnetic gear device, similar effects can be obtained even if it is a magnetically geared rotating electric machine.
  • FIG. 9 is a sectional view of the rotating device according to the fifth embodiment.
  • FIG. 9 is a cross-sectional view of a plane parallel to the rotation axis of the rotation device.
  • the basic configuration of the rotating device of this embodiment is the same as that of the rotating device of Embodiment 3.
  • a cutout portion 11a is formed over the entire circumference of the inner cylindrical core 11 of the inner cylindrical portion 10. As shown in FIG. This notch portion 11a is formed at a position facing the reinforcing ring 24 of the intermediate cylindrical portion 20. Further, the inner cylindrical magnet 12 is divided into four parts in the axial direction corresponding to the notch portions 11a. The reinforcing ring 24 is spaced apart from the inner wall of the notch 11a. Therefore, the inner diameter end of the reinforcing ring 24 of the intermediate cylindrical portion 20 can be located on the inner diameter side than the outer diameter end of the inner cylindrical core 11 . As a result, the radial width of the reinforcing ring 24 can be further increased.
  • the intermediate cylindrical portion 20 includes three reinforcing rings 24. Then, if the length between the reinforcing ring 24 located on the end side in the axial direction and the end plate 25 is L1, and the length between the reinforcing rings 24 located on the center side in the axial direction is L2, then L1 is smaller than L2. In other words, the axial width of the annular portion 23 located on the axial end side is smaller than the axial width of the annular portion 23 located on the axial center side. Therefore, the axial mass distribution of the intermediate cylindrical portion 20 is larger on the end side than on the center side.
  • the intermediate cylindrical portion 20 is fixed at both ends in the axial direction with end plates 25. Therefore, the deformation of the intermediate cylindrical portion 20 due to gravity is greater at the center in the axial direction.
  • the mass distribution in the axial direction of the intermediate cylindrical portion 20 is larger on the end side than on the center side, so deformation of the central portion of the intermediate cylindrical portion 20 due to gravity occurs. can be made smaller.
  • the intermediate cylindrical portion 20 is provided with three reinforcing rings 24, but it may be provided with two or more reinforcing rings 24.
  • the rotating device of this embodiment has been described as a magnetic gear device, similar effects can be obtained even if it is a magnetically geared rotating electric machine.
  • FIG. 10 is a sectional view of a rotating device according to a sixth embodiment.
  • FIG. 10 is a cross-sectional view of a plane parallel to the rotation axis of the rotation device.
  • the basic configuration of the rotating device of this embodiment is the same as that of the rotating device of Embodiment 3.
  • a cutout portion 11a is formed over the entire circumference of the inner cylindrical core 11 of the inner cylindrical portion 10.
  • This notch portion 11a is formed at a position facing the reinforcing ring 24 of the intermediate cylindrical portion 20.
  • the inner cylindrical magnet 12 is divided into four parts in the axial direction corresponding to the notch portions 11a.
  • the reinforcing ring 24 is spaced apart from the inner wall of the notch 11a. Therefore, the inner diameter end of the reinforcing ring 24 of the intermediate cylindrical portion 20 can be located on the inner diameter side than the outer diameter end of the inner cylindrical core 11 . As a result, the radial width of the reinforcing ring 24 can be further increased.
  • the axial width of the notch portion 11a is set to be sufficiently large so that the reinforcing ring 24 does not come into contact with the inner cylindrical core 11.
  • the width of the inner cylindrical magnet 12 in the axial direction is made smaller in accordance with the width of the notch portion 11a, the torque transmission efficiency as a magnetic gear device decreases.
  • the width of the gap in the axial direction between the inner cylindrical magnets 12 is made smaller than the width of the notch 11a.
  • the axial thickness of the reinforcing ring 24 is set to be the smallest at a position facing the inner cylindrical magnet 12 in the axial direction.
  • the axial clearance between the reinforcing ring 24, the inner cylindrical core 11, and the inner cylindrical magnet 12 can be increased, so that the contact between the reinforcing ring 24 and the inner cylindrical portion 10 is prevented. It can be prevented. Further, since it is not necessary to reduce the width of the inner cylindrical magnet 12 in the axial direction, it is possible to prevent the torque transmission efficiency of the magnetic gear device from decreasing.
  • the intermediate cylindrical portion 20 includes three reinforcing rings 24, but it is sufficient to include one or more reinforcing rings 24.
  • the rotating device of this embodiment has been described as a magnetic gear device, similar effects can be obtained even if it is a magnetically geared rotating electric machine.
  • the inner cylindrical core is provided with a notch so that the inner diameter end of the reinforcing ring is located on the inner diameter side than the outer diameter end of the inner cylindrical core. are doing.
  • the inner cylindrical core may be configured with a split core that is divided into a plurality of parts in the axial direction.
  • Rotating device 10 Inner cylindrical part, 11 Inner cylindrical core, 11a Notch part, 12 Inner cylindrical magnet, 20 Intermediate cylindrical part, 21 Spacer, 22 Magnetic pole piece, 23 Annular part, 24 Reinforcement ring, 25 End plate, 26 Bearing , 30 outer cylindrical part, 31 outer cylindrical core, 31a teeth, 32 outer cylindrical magnet, 33 outer cylindrical coil, 40 rotating shaft.

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  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Mechanical Engineering (AREA)
  • Connection Of Motors, Electrical Generators, Mechanical Devices, And The Like (AREA)
  • Dynamo-Electric Clutches, Dynamo-Electric Brakes (AREA)
PCT/JP2022/017773 2022-04-14 2022-04-14 回転装置 Ceased WO2023199460A1 (ja)

Priority Applications (2)

Application Number Priority Date Filing Date Title
JP2023525479A JP7317267B1 (ja) 2022-04-14 2022-04-14 回転装置
PCT/JP2022/017773 WO2023199460A1 (ja) 2022-04-14 2022-04-14 回転装置

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
PCT/JP2022/017773 WO2023199460A1 (ja) 2022-04-14 2022-04-14 回転装置

Publications (1)

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WO2023199460A1 true WO2023199460A1 (ja) 2023-10-19

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Families Citing this family (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP4661260A4 (en) * 2023-02-01 2026-03-11 Mitsubishi Electric Corp ROTATION DEVICE
WO2026028463A1 (ja) * 2024-07-31 2026-02-05 三菱電機株式会社 磁気ギアード回転電機

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH05244741A (ja) * 1992-02-28 1993-09-21 Fanuc Ltd 同期電動機のロータ
JP2014050218A (ja) * 2012-08-31 2014-03-17 Denso Corp マルチギャップ型回転電機
WO2014162804A1 (ja) * 2013-04-01 2014-10-09 富士電機株式会社 永久磁石埋め込み式回転電機
WO2017104359A1 (ja) * 2015-12-17 2017-06-22 日立金属株式会社 磁気変速機
WO2020174936A1 (ja) * 2019-02-26 2020-09-03 パナソニックIpマネジメント株式会社 磁気ギアードモータ
JP6804700B1 (ja) * 2020-01-21 2020-12-23 三菱電機株式会社 固定子およびこれを用いた回転電機

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH05244741A (ja) * 1992-02-28 1993-09-21 Fanuc Ltd 同期電動機のロータ
JP2014050218A (ja) * 2012-08-31 2014-03-17 Denso Corp マルチギャップ型回転電機
WO2014162804A1 (ja) * 2013-04-01 2014-10-09 富士電機株式会社 永久磁石埋め込み式回転電機
WO2017104359A1 (ja) * 2015-12-17 2017-06-22 日立金属株式会社 磁気変速機
WO2020174936A1 (ja) * 2019-02-26 2020-09-03 パナソニックIpマネジメント株式会社 磁気ギアードモータ
JP6804700B1 (ja) * 2020-01-21 2020-12-23 三菱電機株式会社 固定子およびこれを用いた回転電機

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JP7317267B1 (ja) 2023-07-28

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